A camshaft phase adjuster assembly is provided that includes at least one helical groove for adjusting a phase position between a camshaft and a drive sprocket. The camshaft phase adjuster assembly includes a camshaft including at least one helical groove extending between a bore and a radially outer surface of a sprocket support portion, and the helical groove includes circumferentially offset first and second ends. A drive sprocket includes at least one axially extending drive sprocket groove on a radially inner surface of the drive sprocket arranged facing the at least one helical groove. An actuator selectively moves an actuator pin axially such that a radially extending rotation pin slides within the helical groove and the drive sprocket groove from a first phase position to a second phase position.
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16. A camshaft phase adjuster assembly comprising:
a camshaft including a sprocket support portion and at least one first phase adjustment element on a radially outer surface of the sprocket support portion;
a drive sprocket including an opening that is supported on the sprocket support portion of the camshaft and at least one second phase adjustment element on a radially inner surface of the drive sprocket arranged facing the at least one first phase adjustment element;
an actuator pin including a first end and a second end, the first end is engaged with the camshaft; and
an actuator connected to the second end of the actuator pin that selectively moves the actuator pin such that the at least one first and second phase adjustment elements move relative to one another from (1) a first position in which the camshaft and the drive sprocket are located relative to each other in a first phase position, to (2) a second position in which the camshaft and the drive sprocket are rotated relative to each other to a second phase position.
1. A camshaft phase adjuster assembly comprising:
a camshaft including a sprocket support portion, a bore extending axially in the sprocket support portion, and at least one helical groove extending between the bore and a radially outer surface of the sprocket support portion, the at least one helical groove includes circumferentially offset first and second ends;
a drive sprocket including an opening that is supported on the sprocket support portion of the camshaft and at least one axially extending drive sprocket groove on a radially inner surface of the drive sprocket arranged facing the at least one helical groove;
an actuator pin including a first end and a second end, the first end is arranged within the bore of the camshaft and includes at least one radially extending rotation pin, the radially extending rotation pin is engaged with the at least one helical groove and the at least one drive sprocket groove; and
an actuator connected to the second end of the actuator pin that selectively moves the actuator pin axially within the bore of the camshaft such that the at least one radially extending rotation pin slides within the at least one helical groove and the at least one drive sprocket groove from (1) a first position in which the camshaft and the drive sprocket are located relative to each other in a first phase position, to (2) a second position in which the camshaft and the drive sprocket are rotated relative to each other to a second phase position.
2. The camshaft phase adjuster assembly of
3. The camshaft phase adjuster assembly of
4. The camshaft phase adjuster assembly of
5. The camshaft phase adjuster assembly of
6. The camshaft phase adjuster assembly of
7. The camshaft phase adjuster assembly of
8. The camshaft phase adjuster assembly of
9. The camshaft phase adjuster assembly of
10. The camshaft phase adjuster assembly of
11. The camshaft phase adjuster assembly of
12. The camshaft phase adjuster assembly of
13. The camshaft phase adjuster assembly of
14. The camshaft phase adjuster assembly of
15. The camshaft phase adjuster assembly of
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The present invention relates to a camshaft phase adjuster, and is more particularly related to an actuator for a camshaft phase adjuster.
Camshaft phase adjusters are used to either advance or retard the phase of a camshaft with respect to a crankshaft to alter the intake and exhaust stroke timing of the corresponding valves. Known camshaft phase adjuster assemblies include a variety of actuators, such as hydraulic or electric actuators, to adjust the phase of the camshaft. Hydraulic camshaft phase adjusters require hydraulic fluid to be supplied to multi-way valves, and complex arrangements of pressurized channels with sliding seals, and these components increase the cost as well as the overall space requirements for an engine assembly. These known hydraulic camshaft phase adjusters also require complex control components to precisely supply and drain hydraulic fluid to advance and retard the camshaft timing. It would be desirable to provide a simplified camshaft phase adjuster for use in smaller engine applications, e.g. motorcycles, ATVs, and recreational boats, that does not require the large space requirements and/or the complex control components of the known hydraulic camshaft phase adjusters.
A camshaft phase adjuster assembly is provided with an integral actuator that engages helical grooves formed on a camshaft for adjusting a phase position between a camshaft and a drive sprocket. The camshaft phase adjuster assembly includes a camshaft having a sprocket support portion, a bore extending axially in the sprocket support portion, and at least one helical groove extending between the bore and a radially outer surface of the sprocket support portion. The helical groove includes circumferentially offset first and second ends. The camshaft phase adjuster assembly includes a drive sprocket having an opening that is supported on the sprocket support portion of the camshaft, and an axially extending drive sprocket groove on a radially inner surface of the drive sprocket arranged facing the helical groove. The camshaft phase adjuster assembly includes an actuator pin having a first end and a second end. The first end of the actuator pin is arranged within the bore of the camshaft and includes a radially extending rotation pin. The radially extending rotation pin is engaged with the helical groove and the drive sprocket groove. An actuator is connected to the second end of the actuator pin that selectively moves the actuator pin axially within the bore of the camshaft. The axial movement of the actuator slides the radially extending rotation pin within the helical groove and the drive sprocket groove from (1) a first position in which the camshaft and the drive sprocket are rotated relative to each other to a first phase position, to (2) a second position in which the camshaft and the drive sprocket are rotated relative to each other to a second phase position.
Additional embodiments are described below and in the claims.
The foregoing Summary and the following detailed description will be better understood when read in conjunction with the appended drawings, which illustrates a preferred embodiment of the invention. In the drawings:
Certain terminology is used in the following description for convenience only and is not limiting. The words “front,” “rear,” “upper,” and “lower” designate directions in the drawings to which reference is made. The words “inwardly” and “outwardly” refer to directions toward and away from the parts referenced in the drawings. “Axially” refers to a direction along the axis of a shaft. A reference to a list of items that are cited as “at least one of a, b, or c” (where a, b, and c represent the items being listed) means any single one of the items a, b, or c, or combinations thereof. The terminology includes the words specifically noted above, derivatives thereof and words of similar import.
As shown in
As shown in
The camshaft phase adjuster assembly 1 includes an actuator pin 28 having a first end 30 and a second end 32, and the first end 30 is arranged within the bore 6 of the camshaft 2 and includes at least one, and preferably two radially extending rotation pins 34, 36. Each of the two radially extending rotation pins 34, 36 is engaged with a respective one of the helical grooves 8, 10 and a respective one of the drive sprocket grooves 22, 24. In one embodiment, the two radially extending rotation pins 34, 36 are arranged 180° circumferentially apart from each other. Alternatively, a single rotation pin 34 can be used that extends through one helical groove 8 into one drive sprocket groove 22. One of ordinary skill in the art recognizes that more than two rotation pins can be included on the actuator pin 28.
The camshaft phase adjuster assembly 1 also includes an actuator 38 that is connected to the second end 32 of the actuator pin 28 that selectively moves the actuator pin 28 axially within the bore 6 of the camshaft 2. One of ordinary skill will recognize that the actuator 38 can be an electrical, mechanical, hydraulic, or centrifugal actuator. Due to the axial movement from the actuator 38, the radially extending rotation pins 34, 36 slide within the helical grooves 8, 10 and the drive sprocket grooves 22, 24 from (1) a first position in which the camshaft 2 and the drive sprocket 18 are located relative to each other in a first phase position, to (2) a second position in which the camshaft 2 and the drive sprocket 18 are rotated relative to each other to a second phase position. In one embodiment, the first phase position corresponds to a retarded phase position and the second phase position corresponds to an advanced phase position. A spring 42 is preferably arranged between the first end 30 of the actuation pin 28 and the camshaft 2 that biases the actuation pin 28 to the first phase position. In one embodiment, the actuator 38 moves the actuation pin 28 to an intermediate position in which the camshaft 2 and the drive sprocket 18 are rotated relative to each other to a third phase position. In a preferred embodiment, the intermediate position corresponds to a neutral phase position, and the timing is neither retarded nor advanced. As shown in
In one embodiment, a plurality of rolling bearings are provided to support the drive sprocket 18 and camshaft 2. As shown in
In another embodiment shown in
In another embodiment shown in
Having thus described the presently preferred embodiments in detail, it is to be appreciated and will be apparent to those skilled in the art that many physical changes, only a few of which are exemplified in the detailed description of the invention, could be made without altering the inventive concepts and principles embodied therein. It is also to be appreciated that numerous embodiments incorporating only part of the preferred embodiment are possible which do not alter, with respect to those parts, the inventive concepts and principles embodied therein. The present embodiment and optional configurations are therefore to be considered in all respects as exemplary and/or illustrative and not restrictive, the scope of the invention being indicated by the appended claims rather than by the foregoing description, and all alternate embodiments and changes to this embodiment which come within the meaning and range of equivalency of said claims are therefore to be embraced therein.
Patent | Priority | Assignee | Title |
Patent | Priority | Assignee | Title |
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Feb 11 2015 | Schaeffler Technologies AG & Co. KG | (assignment on the face of the patent) | / |
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